

The global Hydrogen-Based CCUS Technologies market size is predicted to grow from US$ 2322 million in 2025 to US$ 10270 million in 2031; it is expected to grow at a CAGR of 28.1% from 2025 to 2031.
CCUS is an enabler of least-cost low-carbon hydrogen production. CCUS can remove CO2 from the atmosphere by combining it with bioenergy or direct air capture to balance emissions that are unavoidable or technically difficult to abate. Hydrogen technologies are technologies that relate to the production and use of hydrogen as a part hydrogen economy.
CCUS (Carbon Capture, Utilization and Storage) carbon capture, utilization and storage technology
surgery. It is a new development trend of CCS (Carbon Capture and Storage) technology, that is, to purify the carbon dioxide emitted in the production process, and then put it into the new production process, which can be recycled instead of simply stored. Compared with CCS, carbon dioxide can be resourced, which can generate economic benefits and is more practical.Challenges of CCUS Technology
At present, CCUS technology is still in the initial stage of research and development and demonstration, and is facing difficulties and problems in the aspects of economy, market, technology, environment and policy. There are still many obstacles and challenges to achieve large-scale development.
1 Economic aspects
The important contribution of CCUS technology lies in its irreplaceable ability to reduce carbon emissions, but the cost is too high. Firstly, the investment cost of the CCUS project is huge, and the investment amount is tens of millions or even hundreds of millions of yuan; secondly, the installation of carbon capture devices will generate additional operation and maintenance costs; finally, for carbon utilization and storage, the price of captured CO2 is too high. High, the price is very uneconomical for oil production companies. With regard to the CCUS demonstration projects currently in operation in China, under such huge cost pressures, the corporate rate of return can only be maintained at 2% or below. If the emission reduction benefits cannot be realized, it will seriously affect the enthusiasm of enterprises to carry out CCUS demonstration projects.
2 Technical aspects
CCUS technology is a highly integrated collection, transportation, utilization and storage of various technologies, and it needs to promote the development of all links in an orderly and balanced manner. First of all, the introduction of the CCUS capture link will increase additional energy consumption. Under the current technical level, the primary energy consumption will increase by 10%~20% or even more, resulting in a great loss of efficiency. Secondly, because CO2 is chemically inert and thermally stable, a large amount of energy must be re-invested in order to effectively convert and utilize CO2, which limits the utilization of CO2 as a resource, and it is necessary to find a suitable catalyst system. There are risks of uncertainty in the geological exploration of the second geological utilization and storage link. The information support for CO2 geological storage is not enough, and the enterprise cannot make a comprehensive assessment of the stratum structure, storage potential, storage risk and detection plan, which increases the business risk of the enterprise. Finally, under the goal of carbon neutrality, CCUS technology needs to complete the cumulative emission reduction task of 17.5 to 31.5 billion tons of CO2. However, most of the current CCUS demonstration projects can capture CO2 from 10,000 to 100,000 tons, and there is a lack of large-scale, replicable A full-process integration demonstration project with obvious economic benefits. Therefore, research and development of low-cost, low-energy CCUS technology and large-scale full-process CCUS integration demonstration will promote the deployment and promotion of CCUS technology.
3 麻豆原创 aspects
The development of the CCUS industry requires long-term and large capital investment. However, due to the high cost of CCUS emission reduction and the uncertainty of technology, companies are often unwilling to bear the risk of investing in CCUS research and development and demonstration alone. In addition, the global carbon market is in its infancy, there is no large-scale CO2 demand market, the carbon tax policy is not clear, and it is impossible to measure the emission reduction capacity of this part economically. Therefore, the foundation for the commercial development of CCUS projects is weak, and many Businesses and potential investors balk at it. On the other hand, the CCUS industry chain covers almost all links of energy production and consumption, such as electric power, steel, cement, petroleum, chemical industry and other industries. At present, there are few CCUS full-process demonstration projects, and there is a lack of cross-industry and cross-departmental cooperation models. There is a problem of poor connection between CO2 capture projects and utilization and storage projects. Therefore, under the existing market environment and policy framework, how to reasonably solve the problem of cooperation and benefit distribution among multiple enterprises on the benefit chain will directly affect CCUS development process.
4 Environmental aspects
Due to the nature of CO2 itself, any leakage of CO2 in each link of CCUS technology will have an impact on the ecological environment. Under the current technical level, the environmental risks in the general capture and transportation links are small, and the main environmental risks come from the geological storage and utilization of CO2. From the perspective of geological time scale, due to complex unforeseen and uncontrollable geological movements (such as earthquakes) and the corrosiveness of CO2 to the formation, CO2 leaks and escapes to the surface, forming a catastrophic suffocation area and a sudden increase in The greenhouse effect causes a series of environmental problems such as soil, groundwater and atmosphere near the leakage area, and poses a fatal threat to animals, plants and human health. This also seriously restricts the understanding and acceptance of CCUS by the government and the public.
Prospect of CCUS Technology Application
The technical links of CCUS are closely connected and complement each other. The front-end carbon capture link provides CO2 for the utilization and storage link, the intermediate transportation link provides CO2 transportation guarantee, and the back-end CO2 utilization turns CO2 into treasure, forming a downstream related industrial chain with commercial value. , to create a huge CO2 demand market, to achieve a win-win situation of CO2 fixation and economic benefits, which in turn will promote the development of carbon capture projects.
Most of the current carbon capture projects are industrialized centralized capture, and there are demonstration projects for pre-combustion, post-combustion, and oxygen-enriched combustion technologies; while CO2 utilization and storage projects are mainly CO2-EOR, resource utilization projects are rare . CO2-EOR is a mature technology that has been applied by the oil industry for decades, and currently occupies a dominant position in CCUS projects around the world, but its income is heavily dependent on oil prices, and its economic sustainability is poor. In terms of resource utilization of CO2, it has been reported in the literature that only 1.1 million tons of CO2 is industrially utilized and converted into chemicals every year, of which 90% is converted into urea, inorganic carbonate, etc., and very little is converted into other high-addition materials. valuable chemicals. At present, the vast majority of CO2 resource utilization industries have not yet achieved commercial application, and have not established relevant industrial chain clusters. Despite the high cost and high energy consumption of carbon capture projects, the disconnection between them and the carbon utilization stage makes it difficult to generate economic benefits, which has become the fundamental reason restricting the development of carbon capture projects. Therefore, while researching and developing low-cost, low-energy carbon capture technology, we must accelerate the layout of CO2 resource utilization, in order to accelerate the implementation, development and large-scale promotion of CCUS projects.
CO2 Utilization Industry Development Trend
1. Utilization of high value-added carbon-based new materials
CO2 conversion to manufacture high value-added carbon-based new materials (carbon nanotubes and graphene, etc.) will be part of an effective path to carbon neutrality such as coal power plants. It will provide a sustainable economic basis for overall carbon neutrality. Carbon nanomaterials have been widely used in lithium battery conductive pastes and conductive plastics, and can also be used in solar conductive silver pastes, anti-corrosion coatings, and thermal greases. At present, this technology has been successfully applied to industrial demonstration projects, with remarkable economic benefits. Due to the limited demand for high-tech materials, billions of tons of CO2 need to find another way out. One of the important directions of green chemistry research is to regard CO2, biomass, coal, oil, and natural gas as the five basic industrial raw materials, which are used to produce tens of thousands of daily-needed end products.
2. Chemical utilization
Incorporate CO2 into the industrial system, together with biomass materials, coal, oil and natural gas, as the five basic raw materials of industry, and build a new CO2 economic industrial chain, which is not only used to produce basic chemicals such as methanol and olefins, but also involves various intermediates Body and tens of thousands of end products (as shown in Figure 3). For example, Shanxi Clean Carbon Research Institute purifies CO2 in industrial flue gas, not only converting it into chemical products such as carbonate, ethylene glycol, and methanol fuel, but also using supercritical CO2 to manufacture lightweight materials for aircraft and automobile interior parts, Energy-saving and environment-friendly products such as packaging materials. With technological progress and cost reduction, CO2 resource utilization is gradually promoted, and the chemical industry is expected to accelerate greening.
LPI (publisher)' newest research report, the 鈥淗ydrogen-Based CCUS Technologies Industry Forecast鈥 looks at past sales and reviews total world Hydrogen-Based CCUS Technologies sales in 2024, providing a comprehensive analysis by region and market sector of projected Hydrogen-Based CCUS Technologies sales for 2025 through 2031. With Hydrogen-Based CCUS Technologies sales broken down by region, market sector and sub-sector, this report provides a detailed analysis in US$ millions of the world Hydrogen-Based CCUS Technologies industry.
This Insight Report provides a comprehensive analysis of the global Hydrogen-Based CCUS Technologies landscape and highlights key trends related to product segmentation, company formation, revenue, and market share, latest development, and M&A activity. This report also analyses the strategies of leading global companies with a focus on Hydrogen-Based CCUS Technologies portfolios and capabilities, market entry strategies, market positions, and geographic footprints, to better understand these firms鈥 unique position in an accelerating global Hydrogen-Based CCUS Technologies market.
This Insight Report evaluates the key market trends, drivers, and affecting factors shaping the global outlook for Hydrogen-Based CCUS Technologies and breaks down the forecast by Type, by Application, geography, and market size to highlight emerging pockets of opportunity. With a transparent methodology based on hundreds of bottom-up qualitative and quantitative market inputs, this study forecast offers a highly nuanced view of the current state and future trajectory in the global Hydrogen-Based CCUS Technologies.
This report presents a comprehensive overview, market shares, and growth opportunities of Hydrogen-Based CCUS Technologies market by product type, application, key players and key regions and countries.
Segmentation by Type:
Carbon Capture and Storage (CCS)
Carbon Capture and Utilization (CCU)
Carbon Capture and Conversion (CCC)
Segmentation by Application:
Oil and Gas
Power Generation
Others
This report also splits the market by region:
Americas
United States
Canada
Mexico
Brazil
APAC
China
Japan
Korea
Southeast Asia
India
Australia
Europe
Germany
France
UK
Italy
Russia
Middle East & Africa
Egypt
South Africa
Israel
Turkey
GCC Countries
The below companies that are profiled have been selected based on inputs gathered from primary experts and analyzing the company's coverage, product portfolio, its market penetration.
Exxonmobil Corporation
Schlumberger
Linde AG
BASF
General Electric
Siemens
Honeywell UOP
Equinor
Aker Solutions
Shell
Fluor
Sinopec
Please Note - This is an on demand report and will be delivered in 2 business days (48 hours) post payment.
1 Scope of the Report
1.1 麻豆原创 Introduction
1.2 Years Considered
1.3 Research Objectives
1.4 麻豆原创 Research Methodology
1.5 Research Process and Data Source
1.6 Economic Indicators
1.7 Currency Considered
1.8 麻豆原创 Estimation Caveats
2 Executive Summary
2.1 World 麻豆原创 Overview
2.1.1 Global Hydrogen-Based CCUS Technologies 麻豆原创 Size (2020-2031)
2.1.2 Hydrogen-Based CCUS Technologies 麻豆原创 Size CAGR by Region (2020 VS 2024 VS 2031)
2.1.3 World Current & Future Analysis for Hydrogen-Based CCUS Technologies by Country/Region (2020, 2024 & 2031)
2.2 Hydrogen-Based CCUS Technologies Segment by Type
2.2.1 Carbon Capture and Storage (CCS)
2.2.2 Carbon Capture and Utilization (CCU)
2.2.3 Carbon Capture and Conversion (CCC)
2.3 Hydrogen-Based CCUS Technologies 麻豆原创 Size by Type
2.3.1 Hydrogen-Based CCUS Technologies 麻豆原创 Size CAGR by Type (2020 VS 2024 VS 2031)
2.3.2 Global Hydrogen-Based CCUS Technologies 麻豆原创 Size 麻豆原创 Share by Type (2020-2025)
2.4 Hydrogen-Based CCUS Technologies Segment by Application
2.4.1 Oil and Gas
2.4.2 Power Generation
2.4.3 Others
2.5 Hydrogen-Based CCUS Technologies 麻豆原创 Size by Application
2.5.1 Hydrogen-Based CCUS Technologies 麻豆原创 Size CAGR by Application (2020 VS 2024 VS 2031)
2.5.2 Global Hydrogen-Based CCUS Technologies 麻豆原创 Size 麻豆原创 Share by Application (2020-2025)
3 Hydrogen-Based CCUS Technologies 麻豆原创 Size by Player
3.1 Hydrogen-Based CCUS Technologies 麻豆原创 Size 麻豆原创 Share by Player
3.1.1 Global Hydrogen-Based CCUS Technologies Revenue by Player (2020-2025)
3.1.2 Global Hydrogen-Based CCUS Technologies Revenue 麻豆原创 Share by Player (2020-2025)
3.2 Global Hydrogen-Based CCUS Technologies Key Players Head office and Products Offered
3.3 麻豆原创 Concentration Rate Analysis
3.3.1 Competition Landscape Analysis
3.3.2 Concentration Ratio (CR3, CR5 and CR10) & (2023-2025)
3.4 New Products and Potential Entrants
3.5 Mergers & Acquisitions, Expansion
4 Hydrogen-Based CCUS Technologies by Region
4.1 Hydrogen-Based CCUS Technologies 麻豆原创 Size by Region (2020-2025)
4.2 Global Hydrogen-Based CCUS Technologies Annual Revenue by Country/Region (2020-2025)
4.3 Americas Hydrogen-Based CCUS Technologies 麻豆原创 Size Growth (2020-2025)
4.4 APAC Hydrogen-Based CCUS Technologies 麻豆原创 Size Growth (2020-2025)
4.5 Europe Hydrogen-Based CCUS Technologies 麻豆原创 Size Growth (2020-2025)
4.6 Middle East & Africa Hydrogen-Based CCUS Technologies 麻豆原创 Size Growth (2020-2025)
5 Americas
5.1 Americas Hydrogen-Based CCUS Technologies 麻豆原创 Size by Country (2020-2025)
5.2 Americas Hydrogen-Based CCUS Technologies 麻豆原创 Size by Type (2020-2025)
5.3 Americas Hydrogen-Based CCUS Technologies 麻豆原创 Size by Application (2020-2025)
5.4 United States
5.5 Canada
5.6 Mexico
5.7 Brazil
6 APAC
6.1 APAC Hydrogen-Based CCUS Technologies 麻豆原创 Size by Region (2020-2025)
6.2 APAC Hydrogen-Based CCUS Technologies 麻豆原创 Size by Type (2020-2025)
6.3 APAC Hydrogen-Based CCUS Technologies 麻豆原创 Size by Application (2020-2025)
6.4 China
6.5 Japan
6.6 South Korea
6.7 Southeast Asia
6.8 India
6.9 Australia
7 Europe
7.1 Europe Hydrogen-Based CCUS Technologies 麻豆原创 Size by Country (2020-2025)
7.2 Europe Hydrogen-Based CCUS Technologies 麻豆原创 Size by Type (2020-2025)
7.3 Europe Hydrogen-Based CCUS Technologies 麻豆原创 Size by Application (2020-2025)
7.4 Germany
7.5 France
7.6 UK
7.7 Italy
7.8 Russia
8 Middle East & Africa
8.1 Middle East & Africa Hydrogen-Based CCUS Technologies by Region (2020-2025)
8.2 Middle East & Africa Hydrogen-Based CCUS Technologies 麻豆原创 Size by Type (2020-2025)
8.3 Middle East & Africa Hydrogen-Based CCUS Technologies 麻豆原创 Size by Application (2020-2025)
8.4 Egypt
8.5 South Africa
8.6 Israel
8.7 Turkey
8.8 GCC Countries
9 麻豆原创 Drivers, Challenges and Trends
9.1 麻豆原创 Drivers & Growth Opportunities
9.2 麻豆原创 Challenges & Risks
9.3 Industry Trends
10 Global Hydrogen-Based CCUS Technologies 麻豆原创 Forecast
10.1 Global Hydrogen-Based CCUS Technologies Forecast by Region (2026-2031)
10.1.1 Global Hydrogen-Based CCUS Technologies Forecast by Region (2026-2031)
10.1.2 Americas Hydrogen-Based CCUS Technologies Forecast
10.1.3 APAC Hydrogen-Based CCUS Technologies Forecast
10.1.4 Europe Hydrogen-Based CCUS Technologies Forecast
10.1.5 Middle East & Africa Hydrogen-Based CCUS Technologies Forecast
10.2 Americas Hydrogen-Based CCUS Technologies Forecast by Country (2026-2031)
10.2.1 United States 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.2.2 Canada 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.2.3 Mexico 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.2.4 Brazil 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.3 APAC Hydrogen-Based CCUS Technologies Forecast by Region (2026-2031)
10.3.1 China Hydrogen-Based CCUS Technologies 麻豆原创 Forecast
10.3.2 Japan 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.3.3 Korea 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.3.4 Southeast Asia 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.3.5 India 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.3.6 Australia 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.4 Europe Hydrogen-Based CCUS Technologies Forecast by Country (2026-2031)
10.4.1 Germany 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.4.2 France 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.4.3 UK 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.4.4 Italy 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.4.5 Russia 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.5 Middle East & Africa Hydrogen-Based CCUS Technologies Forecast by Region (2026-2031)
10.5.1 Egypt 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.5.2 South Africa 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.5.3 Israel 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.5.4 Turkey 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
10.6 Global Hydrogen-Based CCUS Technologies Forecast by Type (2026-2031)
10.7 Global Hydrogen-Based CCUS Technologies Forecast by Application (2026-2031)
10.7.1 GCC Countries 麻豆原创 Hydrogen-Based CCUS Technologies Forecast
11 Key Players Analysis
11.1 Exxonmobil Corporation
11.1.1 Exxonmobil Corporation Company Information
11.1.2 Exxonmobil Corporation Hydrogen-Based CCUS Technologies Product Offered
11.1.3 Exxonmobil Corporation Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.1.4 Exxonmobil Corporation Main Business Overview
11.1.5 Exxonmobil Corporation Latest Developments
11.2 Schlumberger
11.2.1 Schlumberger Company Information
11.2.2 Schlumberger Hydrogen-Based CCUS Technologies Product Offered
11.2.3 Schlumberger Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.2.4 Schlumberger Main Business Overview
11.2.5 Schlumberger Latest Developments
11.3 Linde AG
11.3.1 Linde AG Company Information
11.3.2 Linde AG Hydrogen-Based CCUS Technologies Product Offered
11.3.3 Linde AG Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.3.4 Linde AG Main Business Overview
11.3.5 Linde AG Latest Developments
11.4 BASF
11.4.1 BASF Company Information
11.4.2 BASF Hydrogen-Based CCUS Technologies Product Offered
11.4.3 BASF Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.4.4 BASF Main Business Overview
11.4.5 BASF Latest Developments
11.5 General Electric
11.5.1 General Electric Company Information
11.5.2 General Electric Hydrogen-Based CCUS Technologies Product Offered
11.5.3 General Electric Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.5.4 General Electric Main Business Overview
11.5.5 General Electric Latest Developments
11.6 Siemens
11.6.1 Siemens Company Information
11.6.2 Siemens Hydrogen-Based CCUS Technologies Product Offered
11.6.3 Siemens Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.6.4 Siemens Main Business Overview
11.6.5 Siemens Latest Developments
11.7 Honeywell UOP
11.7.1 Honeywell UOP Company Information
11.7.2 Honeywell UOP Hydrogen-Based CCUS Technologies Product Offered
11.7.3 Honeywell UOP Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.7.4 Honeywell UOP Main Business Overview
11.7.5 Honeywell UOP Latest Developments
11.8 Equinor
11.8.1 Equinor Company Information
11.8.2 Equinor Hydrogen-Based CCUS Technologies Product Offered
11.8.3 Equinor Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.8.4 Equinor Main Business Overview
11.8.5 Equinor Latest Developments
11.9 Aker Solutions
11.9.1 Aker Solutions Company Information
11.9.2 Aker Solutions Hydrogen-Based CCUS Technologies Product Offered
11.9.3 Aker Solutions Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.9.4 Aker Solutions Main Business Overview
11.9.5 Aker Solutions Latest Developments
11.10 Shell
11.10.1 Shell Company Information
11.10.2 Shell Hydrogen-Based CCUS Technologies Product Offered
11.10.3 Shell Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.10.4 Shell Main Business Overview
11.10.5 Shell Latest Developments
11.11 Fluor
11.11.1 Fluor Company Information
11.11.2 Fluor Hydrogen-Based CCUS Technologies Product Offered
11.11.3 Fluor Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.11.4 Fluor Main Business Overview
11.11.5 Fluor Latest Developments
11.12 Sinopec
11.12.1 Sinopec Company Information
11.12.2 Sinopec Hydrogen-Based CCUS Technologies Product Offered
11.12.3 Sinopec Hydrogen-Based CCUS Technologies Revenue, Gross Margin and 麻豆原创 Share (2020-2025)
11.12.4 Sinopec Main Business Overview
11.12.5 Sinopec Latest Developments
12 Research Findings and Conclusion
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*If Applicable.